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Conductive framework of inverse opal structure for sulfur cathode in lithium-sulfur batteries

机译:锂硫电池硫阴极反蛋白石结构的导电骨架

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摘要

As a promising cathode inheritor for lithium-ion batteries, the sulfur cathode exhibits very high theoretical volumetric capacity and energy density. In its practical applications, one has to solve the insulating properties of sulfur and the shuttle effect that deteriorates cycling stability. The state-of-the-art approaches are to confine sulfur in a conductive matrix. In this work, we utilize monodisperse polystyrene nanoparticles as sacrificial templates to build polypyrrole (PPy) framework of an inverse opal structure to accommodate (encapsulate) sulfur through a combined in situ polymerization and melting infiltration approach. In the design, the interconnected conductive PPy provides open channels for sulfur infiltration, improves electrical and ionic conductivity of the embedded sulfur, and reduces polysulfide dissolution in the electrolyte through physical and chemical adsorption. The flexibility of PPy and partial filling of the inverse opal structure endure possible expansion and deformation during long-term cycling. It is found that the long cycling stability of the cells using the prepared material as the cathode can be substantially improved. The result demonstrates the possibility of constructing a pure conductive polymer framework to accommodate insulate sulfur in ion battery applications.
机译:作为锂离子电池的有希望的阴极继承者,硫阴极具有很高的理论体积容量和能量密度。在其实际应用中,必须解决硫的绝缘特性和恶化循环稳定性的穿梭效应。最先进的方法是将硫限制在导电基质中。在这项工作中,我们利用单分散的聚苯乙烯纳米颗粒作为牺牲模板来构建反蛋白石结构的聚吡咯(PPy)框架,以通过组合的原位聚合和熔融渗透方法来容纳(包封)硫。在设计中,互连的导电PPy为硫的渗透提供了开放的通道,提高了嵌入硫的电导率和离子电导率,并通过物理和化学吸附减少了多硫化物在电解质中的溶解。 PPy的灵活性和蛋白石反面结构的部分填充可承受长期循环过程中可能发生的膨胀和变形。发现使用所制备的材料作为阴极的电池的长循环稳定性可以显着改善。结果证明了构建纯导电聚合物骨架以容纳离子电池应用中的绝缘硫的可能性。

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